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<html>
<title>Title</title>
<body>
    <link type="text/css" rel="stylesheet" href="css/bootstrap.css"/>

</body>



<center>
<?
mysql_connect ("localhost", "root","")  or die (mysql_error());
mysql_select_db ("dbname");

$term = $_POST['term'];

$sql = mysql_query("select * from items where name like '%$term%'");

while ($row = mysql_fetch_array($sql)){
    echo '<table class="table - striped"> <theader> <tr> <th>ID</th> <th></br> Name</th></tr>'; echo ' <tbody><td>'.$row['id']; echo'</td>';
    echo '<td>'; echo '</theader>' .$row['name']; echo '</td>';


    echo '';
    }


?>
</center>
<script src="js/bootsrap.js"> </script>
</html>

I'm, getting this error:

Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in /home/runedev1/public_html/itemdb/search.php on line 19

When I run the code on localhost using Xampp, it works fine, when I upload it to the web-host, the error appears.

Yes, I am changing the database name, user and password when putting it on the webhost.

share|improve this question

closed as too localized by casperOne Jul 2 '12 at 13:36

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
You must check for errors on your query. if (!$sql) echo mysql_error(); If it works locally, it's likely a database connection failure error on your server, or permission error on dbname. – Michael Berkowski Jun 30 '12 at 20:56
    
The connection or the query has errors. Have you changed the connection parameters to the correct ones for the server when upload? – Napolux Jun 30 '12 at 20:58
3  
'; DROP TABLE items; -- stackoverflow.com/questions/60174/… – MDrollette Jun 30 '12 at 20:58
1  
@MDrollette, the query is easily vulnerable to injection and should be fixed, yes, but mysql_query does not support multiple queries. – pilcrow Jun 30 '12 at 21:07
3  
The mysql_* family is deprecated. Don't use it. – pilcrow Jun 30 '12 at 21:10

Your MySQL query has failed. Meaning you're passing mysql_fetch_array a boolean value, "false".

This occurs most likely because you're forgetting to change your MySQL server, username and password when uploading it. Make sure you supply mysql_connect() with the correct arguments; that said, die() should be triggered if these details are incorrect - normal practice is to have this die() statement after mysql_select_db; not mysql_connect(). This leads me to suspect that you could possibly be selecting the wrong database; as you don't check this for any errors.

mysql_connect ("localhost", "root",""); //ensure these details are correct!!
mysql_select_db ("dbname")  or die (mysql_error());

I would check you're SQL syntax for mysql_query() and ensure your table structure is the same on your server as it is on your localhost server. Also think about using PDO or mysqli* functions, mysql* functions are outdated.

That last point is one worth thinking about especially as your code has a giant SQL Injection vulnerability in it!! Look up these vulnerabilities and change that ASAP,

/* $term is supplied by the browser headers; 
** meaning an attacker can set it to whatever they desire.. */
$term = $_POST['term'];
/* $term is then sent in the database query as-is;
** with no checking or sanitisation; this means they can supply their own query..! */
$sql = mysql_query("select * from items where name like '%$term%'");

When I get similar errors with mysql_query() returning false, I echo the query string to the screen and run it in phpmyadmin or similar to see what it returns, or fix it if needs be. i.e.

/* Generate the query string -before- running it.. */
$query = sprintf("select * from items where name like '%s'", $term);
/* ... print the query string to the page... */
print $query;
/* ... and then run it. */
$sql = mysql_query( $query );

/* Alternatively, only print the query string when an error occurs */
if(! $sql) print sprintf("Error with SQL String: '%s'!", $query);

(Also, search before you post! Every single thread listed in the "Related Posts" has essentially the same title as you, and covers this exact same error; an error which has a pretty simple explanation - the query has failed.)

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